[7] FERNANDO P L N, JAYASINGHE M T R, JAYASINGHE C. Structural feasibility of expanded polystyrene (EPS) based lightweight concrete sandwich wall panels[J]. Construction and Building Materials, 2017, 139: 45-51.
[8] UPASIRI I R, KONTHESIGHA K M C, NANAYAKKARA S M A, et al. Finite element analysis of lightweight composite sandwich panels exposed to fire[J]. Journal of Building Engineering, 2021, 40: 102329.
[9] MO K H, HUSSIN M N, LING T C, et al. Development of lightweight aggregate mortar skin layer for an innovative sandwich concrete composite[J]. Journal of Building Engineering, 2020, 27: 100941.
[10] BABU D S, BABU K G, WEE T H. Properties of lightweight expanded polystyrene aggregate concretes containing fly ash[J]. Cement and Concrete Research, 2005, 35(6): 1218-1223.
[11] CHEN B, LIU J Y. Mechanical properties of polymer-modified concretes containing expanded polystyrene beads[J]. Construction and Building Materials, 2007, 21(1): 7-11.
[12] SAYADI A A, TAPIA J V, NEITZERT T R, et al. Effects of expanded polystyrene (EPS) particles on fire resistance, thermal conductivity and compressive strength of foamed concrete[J]. Construction and Building Materials, 2016, 112: 716-724.
[14] LI C, MIAO L C, YOU Q, et al. Effects of viscosity modifying admixture (VMA) on workability and compressive strength of structural EPS concrete[J]. Construction and Building Materials, 2018, 175: 342-350.
[16] MILED K, SAB K, ROY R L. Particle size effect on EPS lightweight concrete compressive strength: experimental investigation and modelling[J]. Mechanics of Materials, 2007, 39(3): 222-240.
[18] NEHDI M, RAHMAN M A. Estimating rheological properties of cement pastes using various rheological models for different test geometry, gap and surface friction[J]. Cement and Concrete Research, 2004, 34(11): 1993-2007.
[19] FENEUIL B, PITOIS O, ROUSSEL N. Effect of surfactants on the yield stress of cement paste[J]. Cement and Concrete Research, 2017, 100: 32-39.