Ma Jianfei, He Shaohui, Jia Gangshuai
School of Civil Engineering, Beijing Jiaotong University, Haidian District, Beijing 100044, China.
Materials (Basel). 2024 Dec 27;18(1):68. doi: 10.3390/ma18010068.
Existing support systems for thermal pipeline trenches often fail to meet the specific needs of narrow strips, tight timelines, and short construction periods in urban environments. This study introduces a novel recyclable, non-embedded support system composed of corrugated steel plates, retractable horizontal braces, angle steel, and high-strength bolts designed to address these challenges. The system's effectiveness was validated through prototype testing and optimized using Abaqus finite element simulations. The research hypothesizes that this new support structure will enhance construction efficiency, reduce installation costs, and provide adaptable and sustainable solutions in urban trench applications. Prototype tests demonstrated that the proposed support had maintained safety and stability in trenches of 2 m and 3 m depth under a 58 kPa load and rainfall, as well as the 4 m deep trenches under asymmetric loading of 80 kPa. Optimization of the proposed system included installing two screw jacks on each horizontal brace and adjusting the corrugated plates, resulting in reduced weight, improved node strength, and enhanced screw jack adjustability. Numerical simulations confirmed the optimized system's reliability in trenches up to 3 m deep, with caution required for deeper applications to avoid structural failure. The proposed support system offers notable advantages over traditional methods by improving construction efficiency, flexibility, and adaptability while also reducing costs, ensuring safety, and promoting environmental sustainability. Its modular design allows for rapid installation and disassembly, making it suitable for projects with strict deadlines and diverse construction conditions. The findings uphold the initial hypotheses and demonstrate the system's practicality in urban trench projects.
现有的热力管道沟槽支撑系统往往无法满足城市环境中狭长地带、时间紧迫和施工周期短的特殊需求。本研究引入了一种新型的可回收、非嵌入式支撑系统,该系统由波纹钢板、可伸缩水平支撑、角钢和高强度螺栓组成,旨在应对这些挑战。通过原型测试验证了该系统的有效性,并使用Abaqus有限元模拟进行了优化。研究假设这种新的支撑结构将提高施工效率、降低安装成本,并在城市沟槽应用中提供适应性强且可持续的解决方案。原型测试表明,所提出的支撑在58 kPa荷载和降雨条件下,在2米和3米深的沟槽中以及在80 kPa非对称荷载下的4米深沟槽中均保持了安全和稳定性。对所提出系统的优化包括在每个水平支撑上安装两个螺旋千斤顶并调整波纹板,从而减轻了重量、提高了节点强度并增强了螺旋千斤顶的可调性。数值模拟证实了优化后的系统在3米深的沟槽中的可靠性,对于更深的应用需要谨慎操作以避免结构失效。所提出的支撑系统与传统方法相比具有显著优势,它提高了施工效率、灵活性和适应性,同时还降低了成本、确保了安全并促进了环境可持续性。其模块化设计允许快速安装和拆卸,使其适用于工期紧迫和施工条件多样的项目。研究结果支持了最初的假设,并证明了该系统在城市沟槽项目中的实用性。