|
|
|
| Numerical simulation study on grout diffusion radius in fractured surrounding rock based on COMSOL |
| Lei Shigang1, Qiu Xuedong1, Zhu Jiajun1, Zhao Wenlin2,3, Yang Yang1, Yan Wenla1 |
| 1. Sichuan Furong Chuannan Construction Engineering Co., Ltd., Yibin 644000, China; 2. State Key Laboratory Cultivation Base for Gas Geology and Gas Control (Jointly Built by Henan Province and Ministry of Science and Technology), Henan Polytechnic University, Jiaozuo 454000, China; 3. School of Safety Science and Engineering, Henan Polytechnic University, Jiaozuo 454000, China |
|
|
|
|
Abstract Aiming at the problem of pressure parameter optimization in grouting reinforcement of broken surrounding rock of roadway, the goaf of Ludong Mine in Yunnan Province was taken as the engineering background, a numerical model of grouting diffusion of broken surrounding rock was constructed based on COMSOL Multiphysics software, and the seepage law of slurry under 1.0 MPa, 1.2 MPa and 1.4 MPa grouting pressure was systematically simulated. The results showed that in the early stage of grouting diffusion, the higher the slurry pressure, the greater the driving force of the slurry under pressure, and the faster the slurry diffusion ; when the grouting time was extended to the middle and late stages, the increase of grouting pressure on the effective diffusion distance was significantly weakened. With the increase of grouting pressure, the diffusion radius of slurry also increased. However, when 1.4 MPa was compared with 1.0 MPa, the diffusion distance only increased by 4.8 %, while the effects of 1.4 MPa and 1.2 MPa were similar. Considering the economy and engineering benefits, the optimal grouting pressure was recommended to be 1.2 MPa. The relevant research results could provide a theoretical basis for the optimization of grouting parameters of broken surrounding rock.
|
|
|
|
|
|
| [ 1 ] 王 普,陈慧丹,魏泽笙,等. FLAC3D数值模拟技术在煤矿开采防灾减灾教学中的应用与探索[ J ]. 实验技术与管理,2025,42( 7 ):156 - 162.
[ 2 ] 赵新元. 建构筑物保护煤柱线覆岩离层注浆封堵特性与减沉机理[ D ]. 淮南:安徽理工大学,2024.
[ 3 ] 谢福星. 隧洞穿断层破碎带围岩注浆加固圈层模拟试验研
究[ J ]. 建井技术,2025,46( 4 ):78 - 83.
[ 4 ] 施安信. 底部注浆对深基坑稳定性加固效果的数值模拟研
究[ J ]. 砖瓦,2025( 7 ):79 - 83.
[ 5 ] 唐芙蓉,陆银龙,宋浩然. 深井软岩巷道围岩裂隙时效演化规律及注浆强化时机研究[J/OL]. 煤炭学报, 1 - 12[2025-06-
25].https://doi.org/10.13225/j.cnki.jccs.2025.0247.
[ 6 ] 李晨晖,徐志鹏,周硼焜, 等. 强渗透性注浆加固地层蠕变特性及长期变形预测[J/OL]. 工程科学与技术, 1-14[2025-06-17]. https://link.cnki.net/urlid/51.1773.tb.20250617.0
908.003.
[ 7 ] 谢 鲍,程 桦,王雪松,等. 富水砂层幂律型浆液渗透注浆扩散机理[ J ]. 煤田地质与勘探,2025,53( 5 ):150 - 162.
[ 8 ] 张 云,白立丞,曹胜根,等. 采空区矸石基水泥固化充填体重金属离子析出-迁移约束机理[ J ]. 采矿与安全工程学报,2026,43( 1 ):35 - 47.
[ 9 ] 刘荣琴,王湘徽. 基于地下水数值模型的未知污染源预测[ J ]. 中国资源综合利用,2025,43( 6 ):213 - 220.
[ 10 ] 张奥林,王永平,吴宇轩,等. 基于节块展开法的球床式高温气冷堆堆芯导热计算方法[ J ]. 原子能科学技术,2025,59( 12 ):2 649 - 2 659. |
|
|
|