Geng Xiaowei, Cui Yifei, Liu Qingyang
School of Safety Science and Engineering, Liaoning Technical University, Fuxin, Liaoning 123000, China.
ACS Omega. 2025 Jan 13;10(3):2688-2698. doi: 10.1021/acsomega.4c08338. eCollection 2025 Jan 28.
To enhance the wettability of surfactants on anthracite coal and to investigate their wettability mechanisms, a single-factor experiment was conducted using Zhulinshan smokeless coal as a model. By employing contact angle and sedimentation experiments, the optimal formulation method and concentration were established from four surfactants, which were mixed in pairs in equal proportions. Integrating the contact angle and sedimentation experiments of both single and compound surfactants with coal samples revealed that the compound solution of the anionic surfactant SDBS and the nonionic surfactant X-100 exhibited the most effective wetting performance on coal samples from Zhulinshan. The optimal compounding solution was identified as 0.05% SDBS and 0.05% X-100, yielding a contact angle of 16.910° and a sedimentation time of merely 5.79 s. A three-phase system consisting of water, surfactant, and coal was constructed by using the Build Layer tool. Subsequently, molecular dynamics simulations were performed with the Forcite module of Materials Studio software, where the interaction energy, relative concentration distribution, and diffusion coefficients of the water/surfactant/coal system were calculated and analyzed at the molecular level. The findings from contact angle experiments, sedimentation experiments, and optimal compounding schemes derived from molecular simulations regarding the impact of surfactant compounding on the wettability of coal samples were consistent.
为提高表面活性剂对无烟煤的润湿性并探究其润湿机理,以竹林山无烟煤为模型进行单因素实验。通过接触角和沉降实验,从四种表面活性剂中确定了最佳配方方法和浓度,这四种表面活性剂以等比例两两混合。将单一和复合表面活性剂与煤样的接触角和沉降实验相结合,发现阴离子表面活性剂十二烷基苯磺酸钠(SDBS)和非离子表面活性剂X-100的复合溶液对竹林山煤样的润湿性能最为有效。确定最佳复合溶液为0.05%的SDBS和0.05%的X-100,其接触角为16.910°,沉降时间仅为5.79 s。利用构建层工具构建了由水、表面活性剂和煤组成的三相体系。随后,使用Materials Studio软件的Forcite模块进行分子动力学模拟,在分子水平上计算并分析了水/表面活性剂/煤体系的相互作用能、相对浓度分布和扩散系数。关于表面活性剂复合对煤样润湿性影响的接触角实验、沉降实验以及分子模拟得出的最佳复合方案的结果是一致的。