Synergistic Valorization of Ternary Industrial Solid Wastes for Sustainable Loess Stabilization: Mix Optimization, Strength Evolution, and Microstructural Mechanisms
Anhua Xu, Jiahong Li, Yushu Jing, Yonghai Gu, Yuanji Li, Yindong Xu, Bowen GuanThis study investigates the mechanical properties and strength formation mechanism of loess solidified with a ternary blend of fly ash, lithium slag, and magnesium slag. The mix proportion was optimized using response surface methodology with a Box–Behnken design. Unconfined compressive strength (UCS) tests, digital image correlation (DIC), X-ray diffraction (XRD), and scanning electron microscopy (SEM) were employed for evaluation. The optimal 7-day mix (15.926 wt.% fly ash, 10.158 wt.% lithium slag, and 6.427 wt.% magnesium slag) achieved a UCS of 0.974 MPa, while the 28-day optimum (16.064 wt.% fly ash, 10 wt.% lithium slag, and 2 wt.% magnesium slag) yielded 1.834 MPa. Strength development followed a quadratic nonlinear model at early age, shifting to a linear superposition model at 28 days. XRD and SEM revealed that strength enhancement originates from synergistic pozzolanic and hydration reactions under alkaline activation, producing C-S-H gel and ettringite (AFt) that fill pores and cement soil particles. The ternary system demonstrates effective utilization of industrial solid wastes for loess stabilization.