Environmental Sanitation Engineering ›› 2025, Vol. 33 ›› Issue (2): 110-116.doi: 10.19841/j.cnki.hjwsgc.2025.02.015

Previous Articles     Next Articles

Research on Settlement of Vertical Reconstruction of Domestic Waste Landfill

ZHANG Zongjian, ZHOU Feng, BU Qingguo, ZHANG Jiao   

  1. 1. CECEP (Beijing) Energy Conservation and Environmental Protection Engineering Co.Ltd.; 2. CECEP (Longnan) Environmental Protection Energy Co. Ltd.
  • Online:2025-04-28 Published:2025-03-04

Abstract: Based on the settlement experience model of Swoers and so on, a settlement calculation method of Chinese domestic waste landfills provided by Zhejiang University, combined with the characteristics of high-food-waste domestic waste, has been used to calculate the primary and secondary compression settlement, as well as the uneven settlement of vertical reconstruction of domestic waste landfills. The actual project settlements was monitored and compression settlement characteristics was analyzed. Additionally, the mechanical properties of different impermeable materials were collected to analyze their applicability in the engineering application of vertical reconstruction of domestic waste landfills. The results showed that the primary compression settlement had a short duration, while the secondary compression settlement lasted for 30 to 50 years. The compression settlement is nonlinearly proportional to the depth of the underlying domestic waste body and the height of the fly ash body, with the settlement rate decreasing as the depth and height increase. The landfilling slope ratio of the waste body is an important factor affecting uneven settlement, and it is recommended that the slope of the fly ash body be less than 1∶3 to ensure that the tensile strain of the impermeable lining is less than 10%. With the adoption of engineering measures such as bidirectional geogrids and buffer layers, combinations of materials such as HDPE membranes and geotextiles can be used as impermeable linings for vertical reconstruction, and the use of sodium bentonite waterproof blankets and clay in vertical reconstruction is not recommended.

Key words: landfill, vertical reconstruction, compression settlement, uneven settlement, impermeable lining

[1] ZHAO Xi, CAI Xiaowei, YU Cen, XIAO Yao, WEI Si. Comparative Study of Unintentional Emerging Pollutants from Municipal Solid Waste Incineration and Landfill [J]. Environmental Sanitation Engineering, 2025, 33(4): 1-11.
[2] LI Yangqing, YU Sifu. Case Study on the Soil and Groundwater Restoration and Treatment Project of a Hazardous Waste Landfill Area [J]. Environmental Sanitation Engineering, 2025, 33(4): 12-17.
[3] WU Jian, CHUI Chunmeng, WANG Zhiyu, LE Liangliang, CHEN Weihua, HUA Yinfeng, XU Along. Application of Landfill Algae-photovoltaic Complementarity System in the Resource Recovery of Kitchen Waste AnMBR Effluent [J]. Environmental Sanitation Engineering, 2025, 33(4): 78-85.
[4] MENG Fanyue. Engineering Design for Groundwater Remediation at a Large-scale Aged Landfill Site [J]. Environmental Sanitation Engineering, 2025, 33(3): 56-63.
[5] QIU Qingwen. Suggestions on Geotechnical Engineering Design of Domestic Waste Incineration Fly Ash Landfill [J]. Environmental Sanitation Engineering, 2025, 33(3): 64-69.
[6] CAO Zhanqiang. Research and Engineering Application of Rapid Aerobic Stabilization Equipment for Aged Waste [J]. Environmental Sanitation Engineering, 2025, 33(3): 75-81.
[7] YUAN Miaoxin, GE Enyan, ZHAN Sheng, XU Huazhong, CHEN Huan. Process Design and Exploration of Rapid Ventilation Pretreatment for Landfills [J]. Environmental Sanitation Engineering, 2025, 33(2): 95-101.
[8] SHI Zhili. Analysis of Excavation and Screening Process and Determination of Parameters for Small-scale Simple Landfills:A Case Study on a Small-scale Simple Landfill in Zhejiang Province [J]. Environmental Sanitation Engineering, 2025, 33(2): 102-109.
[9] WU Haijun, SHEN Feng, LI Wanjin, ZHANG Zelin, CAO Jian, LI Jingruo. Study on the Physical-chemical Properties and Unconfined Compressive Strength of Aged Garbage Humus [J]. Environmental Sanitation Engineering, 2024, 32(6): 28-35.
[10] LIANG Zhifei, ZHU Xiongtao. Application of Oxygen Injection Stabilization Pretreatment Technology in Excavation of Stockpiled Waste from Domestic Waste Sanitary Landfill [J]. Environmental Sanitation Engineering, 2024, 32(6): 90-95.
[11] CHEN Hua, HE Yaozhong, LIU Shuai, LIU Chang, YANG Jiajie. Comprehensive Remediation Project of Phased Closure for Large-scale MSW Landfill:A Case Study of a MSW Landfill in Guangdong Province [J]. Environmental Sanitation Engineering, 2024, 32(5): 93-98.
[12] SHANG Weichun, WANG Lixiao, ZHENG Ji, DIAO Luyi. Investigation and Risk Assessment of an Informal Landfill in Zhejiang Province [J]. Environmental Sanitation Engineering, 2024, 32(5): 99-103,111.
[13] SHENG Yan, LIN Huansheng, DU Yuelin, DING Qianshen, LIU Lei. The Influence of Landfilled Age and Compaction Degree on Mechanical Properties of the Waste Humus Soil [J]. Environmental Sanitation Engineering, 2024, 32(5): 104-111.
[14] SHAN Yuanyuan. Analysis and Technological Research of the Influence of Moisture Content on the Screening Efficiency of Refuse Soil [J]. Environmental Sanitation Engineering, 2024, 32(5): 112-115.
[15] XIAO Yi, JIA Weijian. Methane Control Status and Comprehensive Utilization of Domestic Waste in Beijing [J]. Environmental Sanitation Engineering, 2024, 32(3): 9-15.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] . Status Evaluation of Groundwater Quality of A Waste Landfill Site in Tongliao   [J]. Environmental Sanitation Engineering, 2018, 26(3): 36 -38 .
[2] . Analysis on Characteristics of Stench and Effect of Different Deodorization Processes in Domestic Refuse Transfer#br# Station   [J]. Environmental Sanitation Engineering, 2018, 26(3): 56 -58 .
[3] . Stress Analysis of Steam-water Pipes and Optimized Design of Support-hangers in Waste Incineration Power Plant   [J]. Environmental Sanitation Engineering, 2018, 26(3): 59 -62 .
[4] . Research on Treatment of Water-wall High Temperature Corrosion of Waste Heat Boiler in Municipal Solid Waste#br# Incinerator   [J]. Environmental Sanitation Engineering, 2018, 26(3): 68 -70 .
[5] . Prediction on Generation Quantity of Food Waste in Planning of Kitchen Waste Disposal Facilities   [J]. Environmental Sanitation Engineering, 2018, 26(3): 87 -90 .
[6] . [J]. Environmental Sanitation Engineering, 2018, 26(1): 5 -8 .
[7] . [J]. Environmental Sanitation Engineering, 2018, 26(1): 63 -65 .
[8] . [J]. Environmental Sanitation Engineering, 2018, 26(1): 66 -69 .
[9] . [J]. Environmental Sanitation Engineering, 2018, 26(1): 77 -79 .
[10] . [J]. Environmental Sanitation Engineering, 2018, 26(1): 80 -83 .
Copyright © Environmental Sanitation Engineering
Address: 107#, Weidi Road, Tianjin, P.R.C.    Postcode: 300201
Telephone: 022-28365069   Fax: 022-28365080 E-mail: csglwyjs10@tj.gov.cn
Supported by:Beijing Magtech