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用于煤矿的具有改进耐高温性能的黄原胶改性粉煤灰基胶凝防火材料的研制

Development of Xanthan Gum-Modified Coal-Fly-Ash-Based Cementitious Firefighting Materials with Improved High-Temperature Resistance for Coal Mines.

作者信息

Dou Guolan, Chen Peng, Wang Menghan, Wang Jingyu, Zhong Xiaoxing, Wei Shuangming

机构信息

Key Laboratory of Gas and Fire Control for Coal Mines, China University of Mining and Technology, Xuzhou 221116, China.

State Key Laboratory of Coal Mine Disaster Prevention and Control, China University of Mining and Technology, Xuzhou 221116, China.

出版信息

Materials (Basel). 2025 Sep 10;18(18):4246. doi: 10.3390/ma18184246.

Abstract

In this study, xanthan gum (XG)-modified coal-fly-ash-based cementitious materials were synthesized to realize the resource utilization of coal fly ash and to develop a low-carbon emission cementitious sealing material that can substitute cement-based sealing material to prevent coal fires. The optimal formulation for coal-fly-ash-based mining cementitious sealing material was developed using response surface methodology based on Box-Behnken Design. The optimized formulation was obtained with a coal fly ash-to-precursor ratio of 0.65, alkali-activator modulus of 1.4, and alkali-activator dosage of 7.5%. Under the optimal conditions, the initial and final setting time were 26 min and 31 min, respectively, fluidity was 245 mm, and the 7-day compressive strength approached 36.60 MPa, but there were still thermal shrinkage and cracking phenomena after heating. XG was then introduced to improve the thermal shrinkage and cracking of coal-fly-ash-based cementitious materials. Incorporating 1 wt.‱ XG was found to decrease the fluidity while maintaining the setting time and increasing the 1-day and 7-day compressive strength by 15.44% and 1.97%, respectively. The results demonstrated that the gels generated by XG cross-linking and coordinating with Al/Ca were interspersed in the original C(N)-A-S-H gel network, which not only made the 1 wt.‱ XG modified coal-fly-ash-based cementitious material show minor expansion at ambient temperatures, but also improved the residual compressive strength, thermal shrinkage resistance and cracking resistance in comparison to unmodified cementitious material. However, due to the viscosity of XG and the coordination of Al and non-terminal carboxyl groups in XG breaking the gel network, XG incorporation should not exceed 1 wt.‱ as the compressive strength and fluidity are decreased.

摘要

在本研究中,合成了黄原胶(XG)改性的煤矸石基胶凝材料,以实现煤矸石的资源利用,并开发一种低碳排放的胶凝密封材料,以替代水泥基密封材料来防止煤火。基于Box-Behnken设计,采用响应面法开发了煤矸石基采矿胶凝密封材料的最佳配方。得到的优化配方为煤矸石与前驱体的比例为0.65,碱激发剂模量为1.4,碱激发剂用量为7.5%。在最佳条件下,初凝时间和终凝时间分别为26分钟和31分钟,流动性为245毫米,7天抗压强度接近36.60兆帕,但加热后仍存在热收缩和开裂现象。然后引入XG以改善煤矸石基胶凝材料的热收缩和开裂。发现加入1 wt.‱ XG会降低流动性,同时保持凝结时间,并使1天和7天抗压强度分别提高15.44%和1.97%。结果表明,XG与Al/Ca交联和配位生成的凝胶穿插在原始的C(N)-A-S-H凝胶网络中,这不仅使1 wt.‱ XG改性的煤矸石基胶凝材料在室温下表现出轻微膨胀,而且与未改性的胶凝材料相比,提高了残余抗压强度、抗热收缩性和抗裂性。然而,由于XG的粘度以及XG中Al与非末端羧基的配位破坏了凝胶网络,XG的加入量不应超过1 wt.‱,因为抗压强度和流动性会降低。

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