Brunel Fabrice, Pochard Isabelle, Turesson Martin, Gauffinet Sandrine, Labbez Christophe
ICB, UMR 6303 CNRS, Univ. Bourgogne Franche-Comté, FR-21000 Dijon, France.
ACS Omega. 2017 May 17;2(5):2148-2158. doi: 10.1021/acsomega.6b00445. eCollection 2017 May 31.
The high compressive strength of cementitious materials stems from the creation of a percolated network of calcium silicate hydrate (C-S-H) nanoparticles glued together by strong Ca-Ca correlation forces. Although strong, the ion correlation force is short range and yields poor elastic properties (elastic limit and resilience). Here, the use of polycations to partially replace Ca counterions and enhance the resilience of cementitious materials is reported. Adsorption isotherms, electrophoretic mobility, as well as small angle X-ray scattering and dynamic rheometry measurements, are performed on C-S-H gels, used as nonreactive models of cementitious systems, in the presence of different linear and branched polycations for various electrostatic coupling, that is, surface charge densities (pH) and Ca concentrations. The critical strain of the C-S-H gels was found to be improved by up to 1 order of magnitude as a result of bridging forces. At high electrostatic coupling (real cement conditions), only branched polycations are found to improve the deformation at the elastic limit. The results were corroborated by Monte Carlo simulations.
胶凝材料的高抗压强度源于由强钙-钙相关力粘结在一起的硅酸钙水合物(C-S-H)纳米颗粒形成的渗透网络。尽管离子相关力很强,但它作用范围短,导致弹性性能(弹性极限和恢复力)较差。在此,报道了使用聚阳离子部分替代钙离子以增强胶凝材料的恢复力。在不同线性和支化聚阳离子存在下,针对各种静电耦合情况,即表面电荷密度(pH值)和钙浓度,对用作胶凝体系非反应性模型的C-S-H凝胶进行吸附等温线、电泳迁移率以及小角X射线散射和动态流变测量。由于桥连力的作用,发现C-S-H凝胶的临界应变提高了多达1个数量级。在高静电耦合(实际水泥条件)下,仅发现支化聚阳离子能改善弹性极限下的变形。蒙特卡罗模拟证实了这些结果。