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Assessment of recycling use of GFRP powder as replacement of fly ash in geopolymer paste and concrete at ambient and high temperatures

机译:评估GFRP粉末在环境温度和高温下替代地质聚合物浆体和混凝土中粉煤灰的回收利用

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Environmental issues caused by glass fiber reinforced polymer (GFRP) waste have attracted much attention. The development of cost-effective recycling and reuse methods for GFRP composite wastes is therefore essential. In this study, the formulation of the GFRP waste powder replacement was set at 20-40 wt. The geopolymer was formed by mixing GFRP powder, fly ash (FA), steel slag (SS) and ordinary Portland cement (OPC) with a sodium-based alkali activator. The effects of GFRP powder content, activator concentration, liquid to solid (L/S) ratio, and activator solution modulus on the physico-mechanical properties of geopolymer mixtures were identified. Based on the 28-day compressive strength, the optimal combination of the geopolymer mixture was determined to be 30 wt GFRP powder content, an activator concentration of 85, L/S of 0.65, and an activator solution modulus of 1.3. The ratios of compressive strength to flexural strength of the GFRP powder/FA-based geopolymers were considerably lower than those of the FA/steel slag-based geopolymers, which indicates that the incorporation of GFRP powder improved the geopolymer brittleness. The incorporation of 30 GFRP powder in geopolymer concrete to replace FA can enhance the compressive and flexural strengths of geopolymer concrete by 28. After exposure to 600 ?, the flexural strength loss for geopolymer concretes containing 30 wt GFRP powder was less than that of specimens without GFRP powder. After exposure to 900 ?, the compressive strength and flexural strength losses of geopolymer concretes containing 30 wt GFRP powder were similar to those of specimens without GFRP powder. The developed GFRP powder/FA-based geopolymers exhibited comparable or superior physico-mechanical properties to those of the FA-based geopolymers, and thus offer a high application potential as building construction material.
机译:玻璃纤维增强聚合物(GFRP)废弃物引起的环境问题备受关注。因此,开发具有成本效益的GFRP复合废物回收和再利用方法至关重要。在这项研究中,GFRP废粉替代的配方设定为20-40 wt%。由GFRP粉、粉煤灰(FA)、钢渣(SS)和普通硅酸盐水泥(OPC)与钠基碱活化剂混合而成。研究了GFRP粉体含量、活化剂浓度、液固比(L/S)和活化剂溶液模量对地聚物混合物理学性能的影响。根据28 d的抗压强度,确定地聚合物混合物的最佳组合为GFRP粉末含量为30 wt%,活化剂浓度为85%,L/S为0.65,活化剂溶液模量为1.3。GFRP粉体/FA基地聚物的抗压强度与抗弯强度之比均显著低于FA/钢渣基地聚物,表明GFRP粉体的掺入提高了地聚物的脆性。在地聚物混凝土中掺入30%GFRP粉体替代FA,可使地聚物混凝土的抗压强度和抗弯强度提高28%。暴露于600 ?后,含30 wt% GFRP粉的地聚物混凝土的抗弯强度损失小于不含GFRP粉的试样。暴露于900 ?后,含30 wt% GFRP粉的地聚物混凝土的抗压强度和抗弯强度损失与未含GFRP粉的试件相似。开发的GFRP粉体/FA基地质聚合物具有与FA基地质聚合物相当或优越的物理力学性能,因此作为建筑材料具有很高的应用潜力。

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